材料科学
执行机构
软机器人
3D打印
控制重构
磁场
毛细管作用
弹性体
硅酮
聚二甲基硅氧烷
纳米技术
复合材料
机械工程
计算机科学
嵌入式系统
人工智能
工程类
物理
量子力学
作者
Sangchul Roh,Lilian B. Okello,Nuran Golbasi,Jameson P. Hankwitz,Jessica A.‐C. Liu,Joseph B. Tracy,Orlin D. Velev
标识
DOI:10.1002/admt.201800528
摘要
Abstract Soft intelligent structures that are programmed to reshape and reconfigure under magnetic field can find applications such as in soft robotics and biomedical devices. Here, a new class of smart elastomeric architectures that undergo complex reconfiguration and shape change in applied magnetic fields, while floating on the surface of water, is reported. These magnetoactive soft actuators are fabricated by 3D printing with homocomposite silicone capillary ink. The ultrasoft actuators easily deform by the magnetic force exerted on carbonyl iron particles embedded in the silicone, as well as lateral capillary forces. The tensile and compressive moduli of the actuators are easily determined by their topological design through 3D printing. As a result, their responses can be engineered by the interplay of the intensity of the magnetic field gradient and the programmable moduli. 3D printing allows us to fabricate soft architectures with different actuation modes, such as isotropic/anisotropic contraction and multiple shape changes, as well as functional reconfiguration. Meshes that reconfigure in magnetic fields and respond to external stimuli by reshaping could serve as active tissue scaffolds for cell cultures and soft robots mimicking creatures that live on the surface of water.
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